Literature DB >> 1996468

Vanadate-induced toxicity towards isolated perfused rat livers: the role of lipid peroxidation.

M Younes1, O Strubelt.   

Abstract

The toxic potential of sodium orthovanadate towards isolated perfused rat livers was investigated at a dose of 2 mmol/l. In livers from fasted rats, vanadate led to a release of cytosolic (glutamate-pyruvate-transaminase (GPT) and lactate dehydrogenase (LDH] and mitochondrial (glutamate dehydrogenase (GLDH] enzymes, an accumulation of calcium in the liver, a marked depletion of hepatic glutathione and an enhanced release of it into the perfusate, as well as an augmented formation and release of thiobarbituric acid-reactive material by the liver. Furthermore, a marked inhibition of oxygen consumption was observed. Vanadate-induced vasoconstriction resulted in a progressive decrease in perfusate flow rate. Control experiments with similarly reduced flow rates led to a comparable reduction in oxygen consumption. GPT and LDH release and hepatic glutathione depletion were also evident, though to a lesser extent than in the presence of vanadate, but no increase in GLDH release, in tissue calcium content or TBA-reactive material in the liver or the perfusate were observed. Thus, indirect toxic effects due to a reduced flow rate contribute only partly to vanadate hepatotoxicity and do not affect mitochondrial integrity. Omission of calcium from the perfusate did not prevent hepatotoxic responses to vanadate, although less calcium was present in the treated livers than in the control organs, indicating that calcium influx is not involved in vanadate-induced hepatotoxicity in the intact organ, in contrast to isolated hepatocytes. Feeding the animals, resulting in an activation of anaerobic energy conservation reactions, strongly attenuated vanadate hepatotoxicity indicating that the energetic status of the liver is the main target of vanadate. Superoxide dismutase did not affect the hepatotoxic responses of livers from fasted rats towards vanadate, while allopurinol and deferrioxamine inhibited lipid peroxidation and hepatotoxicity due to vanadate. The strong correlation between induction of lipid peroxidation and hepatotoxicity and the inhibition of both processes in parallel by antioxidants are suggestive of a causative role for lipid peroxidation in vanadate-induced hepatotoxicity.

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Year:  1991        PMID: 1996468     DOI: 10.1016/0300-483x(91)90178-4

Source DB:  PubMed          Journal:  Toxicology        ISSN: 0300-483X            Impact factor:   4.221


  9 in total

1.  In vitro and in vivo antineoplastic effects of orthovanadate.

Authors:  T F Cruz; A Morgan; W Min
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Review 2.  Toxicology of vanadium compounds in diabetic rats: the action of chelating agents on vanadium accumulation.

Authors:  J L Domingo; M Gomez; D J Sanchez; J M Llobet; C L Keen
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3.  Oral vanadyl sulfate improves hepatic and peripheral insulin sensitivity in patients with non-insulin-dependent diabetes mellitus.

Authors:  N Cohen; M Halberstam; P Shlimovich; C J Chang; H Shamoon; L Rossetti
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4.  Synthesis of a new vanadyl(IV) complex with trehalose (TreVO): insulin-mimetic activities in osteoblast-like cells in culture.

Authors:  Daniel A Barrio; Patricia A M Williams; Ana M Cortizo; Susana B Etcheverry
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5.  Amelioration of vanadium-induced testicular toxicity and adrenocortical hyperactivity by vitamin E acetate in rats.

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Review 6.  Vanadium: Risks and possible benefits in the light of a comprehensive overview of its pharmacotoxicological mechanisms and multi-applications with a summary of further research trends.

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7.  Magnesium can protect against vanadium-induced lipid peroxidation in the hepatic tissue.

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8.  Oxidative stress changes observed in selected organs of African giant rats (Cricetomys gambianus) exposed to sodium metavanadate.

Authors:  Ifukibot L Usende; James O Olopade; Benjamin O Emikpe; Ademola A Oyagbemi; Adeolu A Adedapo
Journal:  Int J Vet Sci Med       Date:  2018-03-19

9.  Response of Cytoprotective and Detoxifying Proteins to Vanadate and/or Magnesium in the Rat Liver: The Nrf2-Keap1 System.

Authors:  Agnieszka Ścibior; Iwona Wojda; Ewa Wnuk; Łukasz Pietrzyk; Zbigniew Plewa
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  9 in total

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